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February 5, 2026Lubricants3 citationsOpen Access

Artificial Intelligence in Lubricant Research—Advances in Monitoring and Predictive Maintenance

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RSR.N. SHAHKMKate MarussichVMVikram Mittal

Key Points

  • This research explores how artificial intelligence enhances lubricant formulation, monitoring, and maintenance practices.
  • Employs machine learning methods like Bayesian optimization and neural-based modeling for lubricant properties.
  • Utilizes deep learning and hybrid frameworks for predicting lubricant characteristics from molecular data.
  • Implements convolutional neural networks for automated wear debris classification and real-time oil health tracking.
  • Introduces digital twins for predictive maintenance and optimizing lubricant drain intervals.
  • Significant reduction in the need for long-duration field trials due to predictive models.
  • Improved accuracy in predicting key lubricant properties such as viscosity and oxidation stability.
  • Streamlined manufacturing processes through AI-assisted blending and process control, enhancing reproducibility.

Abstract

Artificial intelligence transforms lubricant research by linking molecular modeling, diagnostics, and industrial operations into predictive systems. In this regard, machine learning methods such as Bayesian optimization and neural-based Quantitative Structure–Property/Tribological Relationship (QSPR/QSTR) modeling help to accelerate additive design and formulation development. Moreover, deep learning and hybrid physics–AI frameworks are now capable to predict key lubricant properties such as viscosity, oxidation stability, and wear resistance directly from molecular or spectral data, reducing the need for long-duration field trials like fleet or engine endurance tests. With respect to condition monitoring, convolutional neural networks automate wear debris classification, multimodal sensor fusion enables real-time oil health tracking, and digital twins provide predictive maintenance by forecasting lubricant degradation and optimizing drain intervals. AI-assisted blending and process control platforms extend these advantages into manufacturing, reducing waste and improving reproducibility. This article sheds light on recent progress in AI-driven formulation, monitoring, and maintenance, thus identifying major barriers to adoption such as fragmented datasets, limited model transferability, and low explainability. Moreover, it discusses how standardized data infrastructures, physics-informed learning, and secure federated approaches can advance the industry toward adaptive, sustainable lubricant development under the principles of Industry 5.0.

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Cite This Study

SHAH et al. (2026) studied this question.

synapsesocial.com/papers/6984360af1d9ada3c1fb5a58https://doi.org/10.3390/lubricants14020072
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